Development and Analysis of Patient-Based Complete Conducting Airways Models

被引:46
作者
Bordas, Rafel [1 ]
Lefevre, Christophe [2 ]
Veeckmans, Bart [3 ]
Pitt-Francis, Joe [1 ]
Fetita, Catalin [2 ]
Brightling, Christopher E. [4 ]
Kay, David [1 ]
Siddiqui, Salman [4 ]
Burrowes, Kelly S. [1 ]
机构
[1] Univ Oxford, Dept Comp Sci, Computat Biol, Oxford, England
[2] Inst Mines Telecom, Telecom SudParis, CNRS, ARTEMIS Dept,UMR 8145, Paris, France
[3] Materialise NV, Leuven, Belgium
[4] Univ Leicester, Inst Lung Hlth, Dept Infect Immun & Inflammat, Leicester, Leics, England
关键词
COMPUTATIONAL FLUID-DYNAMICS; 3-DIMENSIONAL MODEL; BRONCHIAL TREE; VENTILATION DEFECTS; PRESSURE DROP; HUMAN LUNGS; RESISTANCE; ASTHMA; CT; HETEROGENEITY;
D O I
10.1371/journal.pone.0144105
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The analysis of high-resolution computed tomography (CT) images of the lung is dependent on inter-subject differences in airway geometry. The application of computational models in understanding the significance of these differences has previously been shown to be a useful tool in biomedical research. Studies using image-based geometries alone are limited to the analysis of the central airways, down to generation 6-10, as other airways are not visible on high-resolution CT. However, airways distal to this, often termed the small airways, are known to play a crucial role in common airway diseases such as asthma and chronic obstructive pulmonary disease (COPD). Other studies have incorporated an algorithmic approach to extrapolate CT segmented airways in order to obtain a complete conducting airway tree down to the level of the acinus. These models have typically been used for mechanistic studies, but also have the potential to be used in a patient-specific setting. In the current study, an image analysis and modelling pipeline was developed and applied to a number of healthy (n = 11) and asthmatic (n = 24) CT patient scans to produce complete patient-based airway models to the acinar level (mean terminal generation 15.8 +/- 0.47). The resulting models are analysed in terms of morphometric properties and seen to be consistent with previous work. A number of global clinical lung function measures are compared to resistance predictions in the models to assess their suitability for use in a patient-specific setting. We show a significant difference (p < 0.01) in airways resistance at all tested flow rates in complete airway trees built using CT data from severe asthmatics (GINA 3-5) versus healthy subjects. Further, model predictions of airways resistance at all flow rates are shown to correlate with patient forced expiratory volume in one second (FEV1) (Spearman rho = -0.65, p < 0.001) and, at low flow rates (0.00017 L/s), FEV1 over forced vital capacity (FEV1/FVC) (rho = -0.58, p < 0.001). We conclude that the pipeline and anatomical models can be used directly in mechanistic modelling studies and can form the basis for future patient-based modelling studies.
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页数:19
相关论文
共 43 条
[1]   Multi-scale computational models of the airways to unravel the pathophysiological mechanisms in asthma and chronic obstructive pulmonary disease (AirPROM) [J].
Burrowes, K. S. ;
De Backer, J. ;
Smallwood, R. ;
Sterk, P. J. ;
Gut, I. ;
Wirix-Speetjens, R. ;
Siddiqui, S. ;
Owers-Bradley, J. ;
Wild, J. ;
Maier, D. ;
Brightling, C. .
INTERFACE FOCUS, 2013, 3 (02)
[2]   Probing airway conditions governing ventilation defects in asthma via hyperpolarized MRI image functional modeling [J].
Campana, Lisa ;
Kenyon, Jennifer ;
Zhalehdoust-Sani, Sanaz ;
Tzeng, Yang-Sheng ;
Sun, Yanping ;
Albert, Mitchell ;
Lutchen, Kenneth R. .
JOURNAL OF APPLIED PHYSIOLOGY, 2009, 106 (04) :1293-1300
[3]  
Choi J, 2011, THESIS
[4]   Computational fluid dynamics can detect changes in airway resistance in asthmatics after acute bronchodilation [J].
De Backer, J. W. ;
Vos, W. G. ;
Devolder, A. ;
Verhulst, S. L. ;
Germonpre, P. ;
Wuyts, F. L. ;
Parizel, P. M. ;
De Backer, W. .
JOURNAL OF BIOMECHANICS, 2008, 41 (01) :106-113
[5]   Validation of Computational Fluid Dynamics in CT-based Airway Models with SPECT/CT [J].
De Backer, Jan W. ;
Vos, Wim G. ;
Vinchurkar, Samir C. ;
Claes, Rita ;
Drollmann, Anton ;
Wulfrank, Denis ;
Parizel, Paul M. ;
Germonpre, Paul ;
De Backer, Wilfried .
RADIOLOGY, 2010, 257 (03) :854-862
[6]  
Fetita C., 2009, P 2 INT WORKSH PULM, P215
[7]   Airway shape assessment with visual feed-back in asthma and obstructive diseases [J].
Fetita, Catalin ;
Ortner, Margarete ;
Brillet, Pierre-Yves ;
Hmeidi, Yahya Ould ;
Preteux, Francoise .
MEDICAL IMAGING 2010: VISUALIZATION, IMAGE-GUIDED PROCEDURES, AND MODELING, 2010, 7625
[8]   Pulmonary airways:: 3-D reconstruction from multislice CT and clinical investigation [J].
Fetita, CI ;
Prêteux, F ;
Beigelman-Aubry, C ;
Grenier, P .
IEEE TRANSACTIONS ON MEDICAL IMAGING, 2004, 23 (11) :1353-1364
[9]   How heterogeneous bronchoconstriction affects ventilation distribution in human lungs: A morphometric model [J].
Gillis, HL ;
Lutchen, KR .
ANNALS OF BIOMEDICAL ENGINEERING, 1999, 27 (01) :14-22
[10]   Clinical significance of small airway obstruction markers in patients with asthma [J].
Gonem, S. ;
Natarajan, S. ;
Desai, D. ;
Corkill, S. ;
Singapuri, A. ;
Bradding, P. ;
Gustafsson, P. ;
Costanza, R. ;
Kajekar, R. ;
Parmar, H. ;
Brightling, C. E. ;
Siddiqui, S. .
CLINICAL AND EXPERIMENTAL ALLERGY, 2014, 44 (04) :499-507